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October 27, 2025Physical review. E0 citations

Nonlinear tearing mode instability studied using Galerkin spectral method

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STShuai TangJWJiaqi WangJLJian Liu

Key Points

  • Magnetic reconnection enhances understanding of plasma dynamics, particularly nonlinear tearing modes.
  • The analysis revealed that the spectral energy distribution aligns with Maxwell-Boltzmann statistics, indicating a new area for studying instabilities.
  • Utilizing spectral methods provides a robust framework for analyzing the nonlinear evolution within tearing mode instabilities in plasmas.
  • Research findings suggest significant implications for turbulence theory and statistical physics in magnetized plasma systems.

Abstract

This study investigates the nonlinear evolution of tearing mode instabilities utilizing a quasiparticle framework integrated with spectral methods. By reformulating the resistive magnetohydrodynamic (MHD) equations via Galerkin spectral decomposition, a direct connection between MHD and quasiparticle statistics is established, where the wave-number--frequency relationship reflects the de Broglie duality (p=, 4pt{0ex}=). Numerical simulations unveil three distinct stages: initial transient growth, a linear stage (₌|m|), and nonlinear evolution and saturation. Harmonic interactions display a growth mechanism governed by energy and momentum conservation (₌=₌^{'}+₌^{''}, 4pt{0ex}m=m^'+m^''). Statistical analysis indicates that the spectral energy distribution follows Maxwell-Boltzmann statistics, with the temperaturelike parameter evolving linearly during the linear stage. Comparisons with HL-2A experimental spectra validate the predictive capability of the model for the evolution of magnetic islands. This study bridges turbulence theory and statistical physics, offering a general mechanism for analyzing magnetic reconnection and nonlinear tearing mode instabilities in magnetized plasmas.

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Cite This Study

Tang et al. (2025) studied this question.

synapsesocial.com/papers/68ff87e9c8c50a61f2bdd364https://doi.org/10.1103/n746-7fzx
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